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자료유형
학술저널
저자정보
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한국자동차공학회 International journal of automotive technology International journal of automotive technology Vol.3 No.1
발행연도
2002.3
수록면
33 - 39 (7page)

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Increasingly stringent emission regulations of EU and CARB (California Air Resource Board) require mandatory OBD (On Board Diagnostics) for the catalytic converters of a vehicle. It demands that MIL(Malfunction Indication Light) should be turned on to inform the driver of catalytic converter failures. Currently dual oxygen sensor method is widely used for the converter OBD. However, since it works only after converter light-off, it has a serious limitation when applied to TLEV or more stringent emission regulations where more than 85% of total emission is coming out before converter light-off. In addition, a recent development in catalyst material, coating technology and additive catalysts leads to a much improved OSC (Oxygen Storage Capacity) after converter light-off, current methods arc very difficult to determine levels of converter aging. Therefore, it is desired to develop an OSC detecting method before converter light-off to diagnose converter failures with higher reliability. In this study, OSCs of converters are measured by an absolute measuring method and a dynamic measuring method, and some of fundamental ideas are suggested about converter OBD before converter light-off. The converters arc aged with two different aging methods; those are a furnace aging and an engine bench aging to represent aging conditions in actual field applications. Dual oxygen sensor method at the lower temperature than light-off is also studied at a model gas bench with the converters. It is found that there is a certain point in temperature lower than light-off where difference due to aging level becomes maximum, thus a proper
dynamic method to effectively monitor catalytic converters could be implemented for the range lower than light-off temperatures. With this result, the aging level of converters is examined at an engine bench.

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ABSTRACT

1.INTRODUCTION

2.OSC AND CONVERTER MONITORING AT COLD START CONDITION

3.RESULTS AND DISCUSSIONS

4.CONCLUSIONS

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